
Posted 7 months ago
Staff Data Scientist– Pricing Science
TorontoRemoteFull-time
AI Summary
Staff Data Scientist designing and shipping production pricing systems — demand forecasting, price elasticity, dynamic pricing, and experiment infrastructure to drive margin and revenue across a portfolio of brands.
About this role
CSC Generation is the AI-native holding company re-engineering omnichannel retail. We acquire iconic brands and transform them with Genesis, our operating platform combining a Data Fabric, Automation Engine, proprietary tools, and shared services to modernize operations, elevate customer experience, and expand margins. With $1B+ in revenue across 13 brands, our portfolio includes Sur La Table, Backcountry, One Kings Lane, and others that serve as real-world innovation labs.
Reports to: Director of Finance and Business Intelligence
Location: Remote — US or Canada
About the Role
As our Staff Data Scientist, you will design and ship production pricing systems such as demand forecasting, price elasticity modeling, dynamic pricing and the experimentation infrastructure needed to measure whether they actually work.
This is a hard, high-stakes problem: your models will directly influence margin and revenue decisions across a portfolio of brands operating at scale. You will own the full arc from framing ambiguous business problems as well-defined ML tasks through to monitoring models that hold up in production.
At six months, success looks like at least one pricing model shipped to production with measurable business impact and an experimentation framework in place that your stakeholders trust. If you have spent time building pricing systems from the ground up, not just consuming them, and you care deeply about rigorous causal inference and honest model evaluation, this role was written for you.
What You'll Do
Required Qualifications
Preferred Qualifications
Why Join
The people who do best here are builders. They take ownership, move fast, and want to see the direct impact of their work.
Interview Process
- Recruiter Screen: 30-minute call to cover your background, the role, and logistics.
- Hiring Manager Interview: Conversation with the Director of Finance and Business Intelligence focused on your pricing science experience, approach to ambiguous ML problems, and how you've driven production impact.
- Technical / Case Discussion: Deep dive into a pricing or demand forecasting problem — expect questions on model evaluation, causal inference, and production failure modes. Cross-functional stakeholders may join.
- Executive Interview: Final conversation with senior leadership.
- Reference Checks: Conducted in parallel with the final stages where possible.
- Offer: We move quickly for the right candidate.
Skills
AWS SageMakerCausal InferenceClassificationDemand ForecastingDynamic PricingGCP Vertex AIMachine LearningPrice ElasticityPythonRegressionSQLTime-series
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